Scientia Agricultura Sinica ›› 2019, Vol. 52 ›› Issue (8): 1341-1354.doi: 10.3864/j.issn.0578-1752.2019.08.005

Special Issue: MALE STERILITY OF CROP

• MALE STERILITY OF CROP • Previous Articles     Next Articles

Overview of the Study and Application of Cytoplasmic Male Sterility in Cotton

WANG XueDe   

  1. College of Agriculture and Biotechnology, Zhejiang University, Hangzhou 310058
  • Received:2018-12-24 Accepted:2019-03-04 Online:2019-04-16 Published:2019-04-26

Abstract:

Cotton has significant heterosis. Hybrid cotton usually can increase production in lint yield by about 15% compared with conventional self-pollinated cultivars, and also can get obvious improvement in fiber quality, disease resistance, insect resistance, adversity resistance and photosynthetic efficiency. Among some links of cotton heterosis use, the most important link is the castration in the production of hybrid seeds. At present, there are four ways for the castration, such as hand emasculation, chemical male gametocide, nuclear male sterility and cytoplasmic male sterility (CMS). The production practice showed that use of cotton male sterility could not only simplify the hybrid seed production but also save the production cost on a commercial economic scale. In particular, the way of hybrid seed production by use of cotton CMS line, maintainer line and restorer line were the most effective way since it could overcome some disadvantages in the other ways. Therefore, in this paper, the study and application of the cotton CMS system in hybrid seed production were overviewed and some of problems currently limiting application were also addressed. At first, the genetic, cytological and biochemical characteristics of the cotton CMS were reviewed. Secondly, the positive/negative effects of sterile cytoplasm in hybrid F1 were analyzed, and how to overcome these negative effects, such as pollen temperature sensitive and F1 not expressing complete fertility, by developing strong restorer lines with a stronger ability for F1 fertility restoration, was discussed in detail. For an example, transgenic strong restorer line could be developed by introducing the exogenous GST gene, which was assumed to have the function of enhancing pollen vitality, into some conventional restorer lines, and so that hybrids with higher heterosis could be produced by crossing this strong restorer with sterile lines. According to the characteristics of cotton as an often cross-pollination crop, this paper recommended in detail the key techniques of hybrid cotton seed production, such as rules of parent (sterile line and restorer line) selection, location selection and environment optimization for enriching native pollinators to produce more hybrid seeds. Then, the paper pointed out that compared with other crops, cotton hybrid seed production based on CMS system has four advantages in the cotton heterosis use: (1) The purity of hybrid seeds can be guaranteed because there is no pollen in anthers of cotton CMS line and its sterility is very stable and not affected by the climate and other environments; (2) The high yield of hybrid seed can be obtained since the long flowering period (about 3 months) of cotton does not result in the flowering asynchronism between sterile line and restorer line; (3) The wide ecological adaptability of cotton and the possibility of large-scale hybrid seed production will be benefited to popularize hybrid cotton; and (4) Interspecific heterosis between upland cotton (Gossypium hirsutum L.) and sea-island cotton (G. barbadense L.) can be used. It is predicted that the hybrid cotton production based on CMS system will be the main approach to utilize heterosis of cotton. Finally, the future works in study and application of CMS in cotton heterosis, especially in development of new sterile lines and restorer lines by use of modern biotechnology, was also discussed.

Key words: cotton, cytoplasmic male sterility (CMS), heterosis

[1] MEYER V G . Male sterility from Gossypium harknessii. The Journal of Heredity, 1975,66:23-27.
[2] 王学德, 李悦有 . 细胞质雄性不育棉花的转基因恢复系的选育. 中国农业科学, 2002,35(2):137-141.
WANG X D, LI Y Y . Development of transgenic restorer of cytoplasmic male sterility in upland cotton. Scientia Agricultura Sinica, 2002,35(2):137-141. (in Chinese)
[3] 王学德 . 三系杂交棉——棉花细胞质雄性不育的研究与利用. 北京: 科学出版社, 2011.
WANG X D. Hybrid Cotton Based on System of Cytoplasmic Male Sterility. Beijing: Science Press, 2011. (in Chinese)
[4] 王学德, 张天真, 潘家驹 . 细胞质雄性不育棉花小孢子发生的细胞学观察和线粒体DNA的RAPD分析. 中国农业科学, 1998,31(2):70-75.
WANG X D, ZHANG T Z, PAN J J . Cytological observation of microsporogenesis and RAPD analysis of mitochondrial DNAs for cytoplasmic male sterile cotton lines. Scientia Agricultura Sinica, 1998,31(2):70-75. (in Chinese)
[5] 王学德, 张天真, 潘家驹 . 棉花细胞质雄性不育系育性恢复的遗传基础: I.恢复基因及其遗传效应. 中国农业科学, 1996,29(5):32-40.
WANG X D, ZHANG T Z, PAN J J . Genetic basis of fertility restoration to cytoplasmic male sterile lines available in China: Ⅰ. Restorer genes and their effects. Scientia Agricultura Sinica, 1996,29(5):32-40. (in Chinese)
[6] 王学德, 潘家驹 . 我国棉花细胞质雄性不育系育性恢复的遗传基础: Ⅱ.恢复基因与育性增强基因间的互作效应. 遗传学报, 1997,24(3):271-277.
WANG X D, PAN J J . Genetic basis of fertility restoration to cytoplasmic male sterile lines available in China: Ⅱ. Interation effects between restorer genes and fertility enhancer gene. Chinese Journal of Genetics, 1997,24(3):271-277. (in Chinese)
[7] WEAVER J B, WESVER J B Jr . Inheritance of pollen fertility restoration in cytoplasmic male-sterile upland cotton. Crop Science, 1977,17:497-499.
doi: 10.2135/cropsci1977.0011183X001700040003x
[8] SHEETZ R H, WESVER J B . Inheritance of a fertility enhancer factor from Pima cotton when transferred into upland cotton withGosypium harknessii Brandegree cytoplasm. Crop Science, 1980,20:272-275.
[9] 张小全, 王学德 . 细胞质雄性不育陆地棉与海岛棉间杂种优势的初步研究. 棉花学报, 2005,17(2):79-83.
ZHANG X Q, WANG X D . Preliminary study on heterosis of interspecific hybrid cotton (Gossypium hirsutum×G.barbadense) based on cytoplasmic male-sterility system. Cotton Science, 2005,17(2):79-83. (in Chinese)
[10] ZHANG X Q, WANG X D, JIANG P D, ZHU W . Inheritance of fertility restoration for cytoplasmic male sterility in a newGossypium barbadense restorer. Agricultural Sciences in China, 2010,9(4):101-105.
[11] 倪密, 王学德, 张昭伟, 朱云国, 张海平, 邵明彦, 袁淑娜, 刘英新, 文国吉 . 三系杂交棉花粉育性对高温和低温胁迫的反应. 作物学报, 2009,35(11):2085-2090.
doi: 10.3724/SP.J.1006.2009.02085
NI M, WANG X D, ZHANG Z W, ZHU Y G, ZHANG H P, SHAO M Y, YUAN S N, LIU Y X, WEN G J . Reaction of pollen fertility on extreme temperature stress in CMS-based hybrid cotton. Acta Agronomica Sinica, 2009,35(11):2085-2090. (in Chinese)
doi: 10.3724/SP.J.1006.2009.02085
[12] 王学德 . 细胞质雄性不育棉花线粒体蛋白质和DNA的分析. 作物学报, 2000,26(1):35-39.
WANG X D . Analyses of mitochondrial protein and DNA from cytoplasmic male sterile cotton. Acta Agronomica Sinica, 2000,26(1):35-39. (in Chinese)
[13] 蒋培东 . 棉花细胞质雄性不育机理的研究[D]. 杭州: 浙江大学, 2007.
JIANG P D . Studies on the mechanism of cotton cytoplasmic male sterility[D]. Hangzhou: Zhejiang University, 2007. (in Chinese)
[14] 巩养仓, 张雪林, 吴建勇, 张兴平, 彭凡嘉, 张志刚, 贺云新, 梅正鼎, 周德桂, 邢朝柱 . 哈克尼西棉细胞质雄性不育相关线粒体基因多态性分析. 棉花学报, 2017,29(4):327-335.
GONG Y C, ZHANG X L, WU J Y, ZHANG X P, PENG F J, ZHANG Z G, HE Y X, MEI Z D, ZHOU D G, XING C Z . Polymorphism analysis of mitochondrial genes associated cytoplasmic male sterility in cotton ( Gossypium harknessii Brandegee). Cotton Science, 2017,29(4):327-335. (in Chinese)
[15] 王学德, 潘家驹 . 细胞质雄性不育陆地棉的细胞质效应. 作物学报, 1997,23(4):393-399.
WANG X D, PAN J J . Cytoplasmic effects of cytoplasmic male sterile upland cotton. Acta Agronomica Sinica, 1997,23(4):393-399. (in Chinese)
[16] 赵存鹏, 王兆晓, 王凯辉, 刘素恩, 耿军义, 郭宝生 . 胞质雄性不育系冀2658A细胞质对陆地棉主要性状的影响. 植物学报, 2017,52(5):560-567.
ZHAO C P, WANG Z X, WANG K H, LIU S E, GENG J Y, GUO B S . Effect of cytoplasmic male sterility on main characters of cotton. Chinese Bulletin of Botany, 2017,52(5):560-567. (in Chinese)
[17] VIRGINA P R, ROGER K S, ERIC R A, RANDY D A . Overexpression of glutathione S-transferase /glutathione peroxidase enhances the growth of transgenic tobacco seedlings during stress. Nature Biotechnology, 1997,15:988-991.
[18] VIRGINA P R, SUNDUS A L, DANIEL K G, JAMES R M, RANGY D A . Stress tolerance in transgenic tobacco seedlings that overexpress glutathione S-transferase/glutathione peroxidase. Plant Cell Physiology, 2000,41(11):1229-1234.
doi: 10.1093/pcp/pcd051
[19] YOHSUKE T, TOSHIYUKI N . parB: An auxin-regulated gene encoding glutathione S-transferase. Proceedings of the National Academy of Sciences of the United States of America, 1992,89(1):56-59.
doi: 10.1073/pnas.89.1.56
[20] BUNICHI E, MAKI K, MASAKO K, HIDEAKI M . Different mechanisms of four aluminum (Al)-resistant transgenes for Al toxicity in Arabidopsis. Plant Physiology, 2001,127(3):918-927.
[21] BUNICHI E, RICHARD C G . Expression of aluminum-induced genes in transgenicArabidopsis plants can ameliorate aluminum stress and/or oxidative stress. Plant Physiology, 2000,122(3):657-665.
[22] 朱云国 . 棉花转GST基因恢复系恢复力提高机理的研究[D]. 杭州: 浙江大学, 2005.
ZHU Y G . Studies on mechanism of the restorability improvement of transgenic GST restorer for CMS-based hybrid cotton[D]. Hangzhou: Zhejiang University, 2005. (in Chinese)
[23] 吴翠翠, 李朋波, 曹美莲, 刘惠民, 曹彩荣, 杨六六 . 壁蜂与蜜蜂对棉花胞质雄性不育系的传粉特性比较. 棉花学报, 2016,28(4):369-374.
WU C C, LI P B, CAO M L, LIU H M, CAO C R, YANG L L . Comparative study of wall bee and honeybee pollination characteristics in cotton cytoplasmic male sterile lines. Cotton Science, 2016,28(4):369-374. (in Chinese)
[24] 刘英新, 王学德, 倪密, 文国吉, 赵亦静, 华水金, 袁淑娜, 邵明彦 . 四个带有标记性状的棉花CMS恢复系的主要农艺与光合生理特性. 棉花学报, 2010,22(5):448-453.
doi: 1002-7807(2010)05-0448-06
LIU Y X, WANG X D, NI M, WEN G J, ZHAO Y J, HUA S J, YUAN S N, SHAO M Y . Evaluation of cotton CMS restorers with different indicator traits for yield, quality and physiological characteristics. Cotton Science, 2010,22(5):448-453. (in Chinese)
doi: 1002-7807(2010)05-0448-06
[25] 刘利彩, 郭立平, 戚廷香, 王海林, 唐会妮, 张学贤, 乔秀琴, 吴建勇, 邢朝柱 . 棉花细胞质雄性不育恢复基因Rf1候选区域SSCP标记开发与候选. 棉花学报, 2018,30(1):12-20.
LIU L C, GUO L P, QI T X, WANG H L, TANG H N, ZHANG X X, QIAO X Q, WU J Y, XING C Z . SSCP marker development and analysis of candidate restorer gene Rf1 for cotton cytoplasmic male sterility. Cotton Science, 2018,30(1):12-20. (in Chinese)
[26] 吴翠翠, 李朋波, 曹彩荣, 曹美莲, 杨六六, 刘惠民 . 棉花雄性不育系网室蜜蜂授粉技术研究. 农学学报, 2016,6(1):21-24.
WU C C, LI P B, CAO C R, CAO M L, YANG L L, LIU H M . Study on honeybee pollination technology of cotton cytoplasmic male sterile lines in net house. Journal of Agriculture, 2016,6(1):21-24. (in Chinese)
[27] LI S S, CHEN Z W, ZHAO N, WANG Y M, NIE H H, HUA J P . The comparison of four mitochondrial genomes reveals cytoplasmic male sterility candidate genes in cotton. BMC Genomics, 2018,19:775-790.
doi: 10.1186/s12864-018-5122-y
[28] ZHAO C P, ZHAO G Y, GENG Z, WANG Z X, WANG K H, LIU S, ZHANG H S, GUO B S, GENG J Y . Physical mapping and candidate gene prediction of fertility restorer gene of cytoplasmic male sterility in cotton. BMC Genomics, 2018,19(1):6-17.
doi: 10.1186/s12864-017-4406-y
[29] YANG L, WU Y L, ZHANG M, ZHANG J F, STEWART J M, XING C Z, WU J Y, JIN S X . Transcriptome, cytological and biochemical analysis of cytoplasmic male sterility and maintainer line in CMS-D8 cotton. Plant Molecular Biology, 2018,97(6):537-551.
doi: 10.1007/s11103-018-0757-2
[30] NIE H H, WANG Y M, SU Y, HUA J P . Exploration of miRNAs and target genes of cytoplasmic male sterility line in cotton during flower bud development. Functional & Integrative Genomics, 2018,18(4):457-476.
[31] SUZUKI H, RODRIGUEZ-URIBE L, XU J N, ZHANG J F . Transcriptome analysis of cytoplasmic male sterility and restoration in CMS-D8 cotton. Plant Cell Reports, 2013,32(10):1531-1542.
doi: 10.1007/s00299-013-1465-7
[32] SONGSTAD D D, PETOLINO J F, VOYTAS D F, REICHERT N A . Genome editing of plants. Critical Reviews in Plant Sciences, 2017,36(1):1-23.
doi: 10.1080/07352689.2017.1281663
[33] ALZAHN M, LEVI L, YIPING Q . Plant genome editing with TALEN and CRISPR. Cell & Bioscience, 2017,7:21.
[34] 朱永红, 李朋波, 潘转霞, 杨六六, 夏芝, 曹彩荣, 吴翠翠, 丁霄, 侯保国 . 利用Barnase和Barstar基因创建棉花雄性不育系及恢复系. 山西农业科学, 2017,45(7):1056-1057, 1083.
ZHU Y H, LI P B, PAN Z X, YANG L L, XIA Z, CAO C R, WU C C, DING X, HOU B G . Study on establishment male sterile lines and restorer lines of cotton by using Barnase and Barstar gene. Journal of Shanxi Agricultural Sciences, 2017,45(7):1056-1057, 1083. (in Chinese)
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